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膜电位对内在蛋白自由能的影响。

Influence of the membrane potential on the free energy of an intrinsic protein.

作者信息

Roux B

机构信息

Département de physique, Université de Montréal, Québec, Canada.

出版信息

Biophys J. 1997 Dec;73(6):2980-9. doi: 10.1016/S0006-3495(97)78327-9.

Abstract

A modified Poisson-Boltzmann equation is developed from statistical mechanical considerations to describe the influence of the transmembrane potential on macromolecular systems. Using a Green's function formalism, the electrostatic free energy of a protein associated with the membrane is expressed as the sum of three terms: a contribution from the energy required to charge the system's capacitance, a contribution corresponding to the interaction of the protein charges with the membrane potential, and a contribution corresponding to a voltage-independent reaction field free energy. The membrane potential, which is due to the polarization interface, is calculated in the absence of the protein charges, whereas the reaction field is calculated in the absence of transmembrane potential. Variations in the capacitive energy associated with typical molecular processes are negligible under physiological conditions. The formulation of the theory is closely related to standard algorithms used to solve the Poisson-Boltzmann equation and only small modifications to current source codes are required for its implementation. The theory is illustrated by examining the voltage-dependent membrane insertion of a simple polyalanine alpha-helix and by computing the electrostatic potential across a 60-A-diameter sphere meant to represent a large intrinsic protein.

摘要

从统计力学角度出发,推导出一个修正的泊松-玻尔兹曼方程,以描述跨膜电位对大分子系统的影响。利用格林函数形式,与膜相关的蛋白质的静电自由能表示为三项之和:一项来自为系统电容充电所需的能量贡献,一项对应于蛋白质电荷与膜电位的相互作用,还有一项对应于与电压无关的反应场自由能。由于极化界面产生的膜电位是在不存在蛋白质电荷的情况下计算的,而反应场是在不存在跨膜电位的情况下计算的。在生理条件下,与典型分子过程相关的电容能量变化可忽略不计。该理论的公式与用于求解泊松-玻尔兹曼方程的标准算法密切相关,只需对当前源代码进行少量修改即可实现。通过研究简单的聚丙氨酸α-螺旋的电压依赖性膜插入,并计算一个直径为60埃的球体(代表一个大型内在蛋白)上的静电势,对该理论进行了说明。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/528d/1181204/e3ffab94f8d9/biophysj00029-0140-a.jpg

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